A certain aqueous solution contains "0.27 mols" of weak acid "HA". If "12.0 mL" of "3.10 M" "NaOH" was added to it, resulting in a "pH" of 3.80, what is the "pK"_a of the weak acid?

1 Answer
Truong-Son N.
Apr 26, 2017

You added less mols of strong base to a weak acid. Hence, you form a buffer by neutralizing some weak acid to generate some weak base. Here's how I would do it...

(1) Use an ICE Table to organize your work.

"0.0120 L" xx "3.10 M NaOH" = "0.0372 mols OH"^(-) added

"HA"(aq) " "" "+" "" " "OH"^(-)(aq) -> "A"^(-)(aq) + "H"_2"O"(l)

"I"" ""0.27 mols"" "" "" ""0.0372 mols"" "" ""0 mols"" "" "-
"C"" " - x" "" "" "" "-"0.0372 mols"" "" "+x
"E"" "(0.27 - x) "mols"" ""0 mols"" "" "" "" "(x) "mols"" "-

Therefore, you form the following base to acid ratio:

(["A"^(-)]_(buffer))/(["HA"]_(buffer)) = (["A"^(-)]_(eq))/(["HA"]_i - ["A"^(-)]_(eq))

= (n_("A"^(-),eq))/(n_(HA,i) - n_(A^(-),eq)

= x/(0.27 - x)

(2) Recognize what this ratio is.

This is the ratio in the Henderson-Hasselbalch equation:

"pH" = "pKa" + log(x/(0.27 - x))

Hence, the "pH" you measured of 3.80 gives you the "pKa" directly:

3.80 - log(x/(0.27 - x)) = "pKa"

But we know that x = 0.0372, so:

color(blue)("pKa") = 3.80 - log(0.0372/(0.27 - 0.0372))

= color(blue)(4.60)

Remember that we don't have to care about the total volume in a buffer. It all cancels out in the Henderson-Hasselbalch ratio anyway, because the solution is shared.

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